Cellular Senescence

Displaying 1 - 7 of 7CSV
Suter, T., Friedman, M. J., Tazearslan, C., Merkurjev, D., Ohgi, K., Meluzzi, D., Rosenfeld, M. G., & Suh, Y. (2025). Ligand-specific regulation of a binary enhancer code dictating cellular senescence. Proceedings of the National Academy of Sciences, 122(24). https://doi.org/10.1073/pnas.2506321122
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Mushtaq, M., Liaño-Pons, J., Wang, J., Alzrigat, M., Yuan, Y., Ruiz-Pérez, M. V., Chen, Y., Kashuba, E., Haglund de Flon, F., Brodin, B., & Arsenian-Henriksson, M. (2024). EZH2 inhibition sensitizes retinoic acid-driven senescence in synovial sarcoma. Cell Death & Disease, 15(11). https://doi.org/10.1038/s41419-024-07176-6
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Bullock, M. E., Hogan, T., Williams, C., Morris, S., Nowicka, M., Sharjeel, M., van Dorp, C., Yates, A. J., & Seddon, B. (2024). The dynamics and longevity of circulating CD4+ memory T cells depend on cell age and not the chronological age of the host. PLOS Biology, 22(8), e3002380. https://doi.org/10.1371/journal.pbio.3002380
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Prince, E. W., Apps, J. R., Jeang, J., Chee, K., Medlin, S., Jackson, E. M., Dudley, R., Limbrick, D., Naftel, R., Johnston, J., Feldstein, N., Prolo, L. M., Ginn, K., Niazi, T., Smith, A., Kilburn, L., Chern, J., Leonard, J., Lam, S., … Hankinson, T. C. (2024). Unraveling the complexity of the senescence-associated secretory phenotype in adamantinomatous craniopharyngioma using multimodal machine learning analysis. Neuro-Oncology, 26(6), 1109–1123. https://doi.org/10.1093/neuonc/noae015
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Gurkar, A. U., Gerencser, A. A., Mora, A. L., Nelson, A. C., Zhang, A. R., Lagnado, A. B., Enninful, A., Benz, C., Furman, D., Beaulieu, D., Jurk, D., Thompson, E. L., Wu, F., Rodriguez, F., Barthel, G., Chen, H., Phatnani, H., Heckenbach, I., Chuang, J. H., … Passos, J. F. (2023). Spatial mapping of cellular senescence: emerging challenges and opportunities. Nature Aging, 3(7), 776–790. https://doi.org/10.1038/s43587-023-00446-6
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Gaydosh, L., Mitchell, C., Notterman, D., Schneper, L., Brooks-Gunn, J., Wagner, B., Koss, K., & McLanahan, S. (2020). Demographic and developmental patterns in telomere length across adolescence. Biodemography and Social Biology, 66(3–4), 208–219. https://doi.org/10.1080/19485565.2021.1983758
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Gautheron, J., Morisseau, C., Chung, W. K., Zammouri, J., Auclair, M., Baujat, G., Capel, E., Moulin, C., Wang, Y., Yang, J., Hammock, B. D., Cerame, B., Phan, F., Fève, B., Vigouroux, C., Andreelli, F., & Jeru, I. (2021). EPHX1 mutations cause a lipoatrophic diabetes syndrome due to impaired epoxide hydrolysis and increased cellular senescence. ELife, 10. CLOCKSS. https://doi.org/10.7554/elife.68445
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